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驾驶模拟中制动和加速运动准备的脑电图时频模式。

Electroencephalographic time-frequency patterns of braking and acceleration movement preparation in car driving simulation.

机构信息

Institute of Neuroscience, National Research Council of Italy, Parma, Italy.

Dipartimento di Scienze Biomediche, Metaboliche e Neuroscienze, University of Modena and Reggio Emilia , Italy.

出版信息

Brain Res. 2019 Aug 1;1716:16-26. doi: 10.1016/j.brainres.2018.09.004. Epub 2018 Sep 7.

Abstract

The objective of the present work was to identify electroencephalographic (EEG) components in order to distinguish between braking and accelerating intention in simulated car driving. To do so, we collected high-density EEG data from thirty participants while they were driving in a car simulator. The EEG was separated into independent components that were clustered across participants according to their scalp map topographies. For each component, time-frequency activity related to braking and acceleration events was determined through wavelet analysis, and the cortical generators were estimated through minimum norm source localisation. Comparisons of the time-frequency patterns of power and phase activations revealed that theta power synchronisation distinguishes braking from acceleration events 800 ms before the action and that phase-locked activity increases for braking 800 ms before foot movement in the theta-alpha frequency range. In addition, source reconstruction showed that the dorso-mesial part of the premotor cortex plays a key role in preparation of foot movement. Overall, the results illustrate that dorso-mesial premotor areas are involved in movement preparation while driving, and that low-frequency EEG rhythms could be exploited to predict drivers' intention to brake or accelerate.

摘要

本研究旨在识别脑电(EEG)成分,以区分模拟驾驶中的制动和加速意图。为此,我们从三十名参与者在汽车模拟器中驾驶时收集了高密度 EEG 数据。将 EEG 分离成独立成分,并根据头皮图拓扑在参与者之间进行聚类。对于每个成分,通过小波分析确定与制动和加速事件相关的时频活动,并通过最小范数源定位估计皮质发生器。功率和相位激活的时频模式比较表明,θ 功率同步在动作前 800ms 区分制动和加速事件,并且在θ-α频带中,在脚部运动前 800ms 时,相位锁定活动增加。此外,源重建表明,运动前皮质的背侧-内侧部分在脚部运动准备中起着关键作用。总体而言,研究结果表明,在驾驶时,背侧-内侧运动前区域参与运动准备,低频 EEG 节律可用于预测驾驶员的制动或加速意图。

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